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Reaction Kinetics of Substrate Transglycosylation Catalyzed by TreX of Sulfolobus solfataricus and Effects on Glycogen Breakdown

机译:硫糖菌TreX催化底物糖基化反应动力学及其对糖原分解的影响

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摘要

We studied the activity of a debranching enzyme (TreX) from Sulfolobus solfataricus on glycogen-mimic substrates, branched maltotetraosyl-β-cyclodextrin (Glc4-β-CD), and natural glycogen to better understand substrate transglycosylation and the effect thereof on glycogen debranching in microorganisms. The validation test of Glc4-β-CD as a glycogen mimic substrate showed that it followed the breakdown process of the well-known yeast and rat liver extract. TreX catalyzed both hydrolysis of α-1,6-glycosidic linkages and transglycosylation at relatively high (>0.5 mM) substrate concentrations. TreX transferred maltotetraosyl moieties from the donor substrate to acceptor molecules, resulting in the formation of two positional isomers of dimaltotetraosyl-α-1,6-β-cyclodextrin [(Glc4)2-β-CD]; these were 61,63- and 61,64-dimaltotetraosyl-α-1,6-β-CD. Use of a modified Michaelis-Menten equation to study substrate transglycosylation revealed that the kcat and Km values for transglycosylation were 1.78 × 103 s−1 and 3.30 mM, respectively, whereas the values for hydrolysis were 2.57 × 103 s−1 and 0.206 mM, respectively. Also, enzyme catalytic efficiency (the kcat/Km ratio) increased as the degree of polymerization of branch chains rose. In the model reaction system of Escherichia coli, glucose-1-phosphate production from glycogen by the glycogen phosphorylase was elevated ∼1.45-fold in the presence of TreX compared to that produced in the absence of TreX. The results suggest that outward shifting of glycogen branch chains via transglycosylation increases the number of exposed chains susceptible to phosphorylase action. We developed a model of the glycogen breakdown process featuring both hydrolysis and transglycosylation catalyzed by the debranching enzyme.
机译:我们研究了Sulfolobus solfataricus的脱支酶(TreX)在糖原模拟底物,支链麦芽四糖基-β-环糊精(Glc4-β-CD)和天然糖原上的活性,以更好地了解底物转糖基化及其对糖原分枝的影响。微生物。作为糖原模拟底物的Glc4-β-CD的验证测试表明,它遵循了众所周知的酵母和大鼠肝脏提取物的分解过程。 TreX在相对较高(> 0.5 mM)的底物浓度下催化α-1,6-糖苷键的水解和转糖基化。 TreX将麦芽四糖基部分从供体底物转移至受体分子,导致形成了二麦芽四糖基-α-1,6-β-环糊精[(Glc4)2-β-CD]的两个位置异构体。这是6 1 ,6 3 -和6 1 ,6 4 -dimaltotetraosyl-α-1,6 -β-CD。使用改进的Michaelis-Menten方程研究底物的糖基转移反应,发现糖基转移反应的kcat和Km值分别为1.78×10 3 s -1 和3.30 mM。水解值分别为2.57×10 3 s -1 和0.206 mM。另外,随着支链聚合度的提高,酶催化效率(kcat / Km比)也增加。在大肠杆菌的模型反应系统中,与不存在TreX的情况相比,在存在TreX的情况下,通过糖原磷酸化酶从糖原产生的葡萄糖-1-磷酸增加了约1.45倍。结果表明,通过转糖基化使糖原分支链向外移动,增加了易受磷酸化酶作用的暴露链的数量。我们开发了一种糖原分解过程的模型,该模型具有水解和脱支酶催化的糖基转移的特征。

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